Traynelis S F, Silver R A, Cull-Candy S G
Salk Institute Molecular Neurobiology Laboratory, San Diego, California 92186-5800.
Neuron. 1993 Aug;11(2):279-89. doi: 10.1016/0896-6273(93)90184-s.
We have analyzed the variance associated with the decay of the non-NMDA receptor component of synaptic currents, recorded from mossy fiber-granule cell synapses in cerebellar slices, to obtain a conductance estimate for the synaptic channel. Current fluctuations arising from the random channel gating properties were separated from those arising from the fluctuations in the population of channels by subtracting the mean excitatory postsynaptic current (EPSC) waveform scaled to the EPSC peak amplitude. A weighted mean single-channel conductance of approximately 20 pS was determined from the relationship between the mean current and the variance around the mean during the decay of evoked and spontaneous synaptic currents. This result suggests that high conductance non-NMDA channels, such as the 10-30 pS glutamate receptor channel previously characterized in granule cells, carry the majority of the fast component of the EPSC at this synapse. In addition, our data are consistent with the activation of surprisingly few (approximately 10) non-NMDA channels by a single packet of transmitter.
我们分析了与小脑切片中苔藓纤维-颗粒细胞突触所记录的突触电流非NMDA受体成分衰减相关的方差,以获得突触通道的电导估计值。通过减去按兴奋性突触后电流(EPSC)峰值幅度缩放的平均EPSC波形,将由随机通道门控特性引起的电流波动与由通道群体波动引起的电流波动区分开来。根据诱发和自发突触电流衰减期间平均电流与平均周围方差之间的关系,确定了加权平均单通道电导约为20 pS。该结果表明,高电导非NMDA通道,如先前在颗粒细胞中表征的10 - 30 pS谷氨酸受体通道,在此突触处携带了EPSC快速成分的大部分。此外,我们的数据与单个递质包激活数量惊人少(约10个)的非NMDA通道一致。